[0001] A variety of techniques are available for affixing objects such as soft tissue to
bone. The oldest technique utilizes thread passed through the bone and the tissue
to sew the tissue down to the bone. Many sizes, shapes and types of suture and suture
needles are available to accomplish this task. Today, this method is still used for
repair of tendons and ligaments in older osteoarthritic patients, although passing
a suture through bone is generally difficult and tedious.
[0002] Soft tissue repairs also have been accomplished with metal screws or staples that
attach soft tissue to bone. Metal screws and/or staples are, however, subject to corrosion
and consequent loss of structure. Moreover, the presence of metal in an anatomical
site can interfere with imaging and diagnostic or therapeutic treatments near the
site. For example, any metal implants may have to be removed by surgery prior to magnetic
resonance imaging. Patient sensitivity to nickel ions and stainless steel implants
has fueled a growing controversy regarding the use of materials containing high quantities
of nickel including nickel-titanium alloys such as Nitinol. Also, it is almost impossible
to adjust the compression exerted by screws and staples on soft tissue. Thus, these
devices are not fully satisfactory for soft tissue repair.
[0003] Other devices employ a suture anchor installation affixed to an arc of wire or a
plurality of barbs disposed on an outer surface of the suture anchor body. The barbs
or arc of wire are set into a bone by applying traction to the suture. Unfortunately,
it is not always possible to position the anchor at a precise location within a bone
if an anchor is being drawn upwards in a bone hole by applying tension to a suture.
Furthermore, many of the fastening devices require some type of impact or impulse
to set the fastener in position. Impact emplacement or setting of bone/suture anchors
may result in injury to the patient as well as placing unnecessary strain on the bone/suture
fastener itsetf. This is especially problematic when suture anchors are intended to
be placed in soft bone such as in procedures to repair anterior cruciate ligaments
or repair torn rotator cuffs.
[0004] WO-96/14798-A discloses a suture anchor assembly having the features of the preamble of claim 1.
The present invention is defined in claim 1. Optional features are recited in the
dependent claims.
[0005] The insertion stem includes a frangible section adjacent to its distal end and designed
to break when sufficient tension is applied to the stem The proximal end of the expander
element may include a peripheral flange integral with the proximal end. Included at
the distal end of the expander and the proximal end of the flexible wall sections
are camming surfaces adapted to engage with each other in order to expand the wall
sections into the bone.
[0006] The preferred assembly of the invention also includes a tool for removing the anchor
element once the anchor element is deployed in bone hole and a tool for applying tension
to the insertion stem.
[0007] A kit for deploying a suture anchor in a bone hole includes the suture anchor assembly
of the invention, a drill, a drill guide, a deployment device, and a tool for removing
the anchor element once deployed.
[0008] Methods for deploying a suture anchor in a bone hole, which are not according to
the present invention, are described and include providing an anchoring element of
the invention for insertion into an opening in a bone and engaging the anchoring element
with an insertion stem. Next, an expander element is engaged with the insertion stem
so that a distal end of the expander element is engaged with a proximal end of the
anchoring element. The insertion stem with its loaded anchoring element is placed
into the bone hole and the expander element is fixed in position in the bone hole.
A tensional force is applied to the insertion stem so that the proximal end of the
anchoring element telescopes over the distal end of the expander element and an outer
surface of the anchoring element engages with the bone. The insertion stem is then
released from the anchoring element. Most preferably, the step of releasing includes
activating a frangible section of the insertion stem so that it breaks.
Brief Description of the Drawings
[0009] The following description of the suture anchors serves in conjunction with the drawings
to explain the invention in further detail, in which:
Figure 1 is an exploded view of a suture anchor not according the invention;
Figure 2 is a partial cut-away view through the suture anchor of Figure 1 emplaced
in a bone hole;
Figure 3 is a plan view of the suture anchor of Figure 2;
Figure 4 is a partial cut-away view through the suture anchor of Figure 1 as it is
being deployed in a bone hole;
Figure 5 is a partial cut-away view through the suture anchor of Figure 4 after emplacement
in a bone hole;
Figure 6 is a plan view of another suture anchor not according emplaced in a bone
hole;
Figure 7 is a partial cut-away view through a third suture anchor not according of
the suture anchor emplaced in a bone hole;
Figures 8A and 8B illustrate deployment of the suture anchor of Figure 7, in which
Figure 8A illustrates deployment of the suture anchor and Figure 8B illustrates removal
of the insertion stem from the bone hole;
Figure 9 is a partial, cut-away view of deployment of the suture anchor of Figure
1 using a pop-rivet gun;
Figure 10 is cut-away view of another suture anchor deployment device not according;
Figure 11 is a cross-sectional view of a hand-held deployment means used with the
device of Figure 10;
Figure 12 is a cut-away view of a device and method for removing a suture anchor;
Figure 13A is an exploded view of a further suture anchor device not according;
Figure 13B depicts the suture anchor of Figure 13A partially assembled;
Figure 14 depicts in cross-section a preferred anchoring element of the suture anchoring
device of Figure 13A;
Figure 15 depicts in side view a preferred expander element of the suture anchoring
device of Figure 13A;
Figures 16 and 17 depict an insertion stem incorporated in a suture anchor assembly
according to the invention;
Figures 18 and 19 depict an anchoring element incorporated in a preferred suture anchor
assembly according to the invention;
Figure 20 depicts an expander element incorporated in a preferred suture anchor assembly
according to the invention: and
Figures 21 - 22 depicts a further suture anchor device including two anchoring elements.
Detailed Description of the Invention
[0010] Suture anchor assemblies, to which the present invention relates, include an elongated
insertion stem and an approximately cylindrical anchoring element having an axial
channel for receiving the insertion stem. In its nonexpanded state, the anchoring
element can be placed into a pre-drilled opening in a bone. An expander element is
engaged with a proximal end of the anchoring element. The term "proximal" refers to
a point that is spaced-apart from the bottom of a bone hole in a direction towards
the point of origin of the assembly (i.e. towards the surgeon), as opposed to a "distal"
point that is closer to the bottom of the bone hole (i.e. farthest from the point
of origin; the surgeon). The anchoring element is capable of moving proximally within
the bone hole (i.e. towards the bone surface) so that the proximal end of the anchoring
element telescopes over a distal end of the expander element. As a result of this
movement, resilient proximal portions of the anchoring element are forced outward
against the expander element, causing the resilient proximal portions of the anchoring
element to expand into the bone hole, fixing the anchoring element in a pressure fit
firmly within the opening. The term "telescopes" has its commonly understood meaning
in this context and refers to surfaces that slide against each other in which one
surface is forced into another. In particular, the distal end of the expander is forced
into the proximal end of the moving anchoring element.
A. The Insertion Stem
[0011] Figure 1 illustrates an exploded view of a suture anchor assembly not according to
the invention containing an insertion stem onto which is loaded an anchoring element
and an expander element.
[0012] One component of the suture anchor assembly 10 is an insertion stem 12, an elongated
cylinder having distal 14 and proximal 16 ends. Distal end 14 is preferably formed
as a shoulder 15 designed to engage a distal end 24 of an anchoring element 20. The
insertion stem 12 has a frangible portion 18 disposed some distance proximal to end
14. The term "frangible" refers to a portion of stem 12 that is breakable or fragile.
In particular, Figure 1 illustrates frangible portion 18 as a section of stem 12 having
a thinner diameter than the remainder of the stem. The frangible section 18 is designed
to sever or break when sufficient tension is applied to the stem 12 in a proximal
direction (shown by arrow A) that is parallel to longitudinal axis (B-B) of the stem.
The frangible portion, however, may be other than a thin-walled section of stem 12
and may include a series of spokes or webbing or a plurality of very attenuated membranes.
B. The Anchoring Element
[0013] Anchoring element 20 is substantially tubular, having opposed proximal 22 and distal
24 ends connected by way of a central axial channel 26 extending from the proximal
end 22 of element 20 to the distal end 24 of the element. Distal end 24 is engaged
with shoulder 15 of stem 12. Element 20 has inner 28 and outer 30 peripheral surfaces
forming a wall. Defined in the wall, and in communication with axial channel 26, are
a series of axially-oriented slots 34 that begin at the proximal end 22 and extend
some distance towards the distal end 24.
[0014] Each of the series of axially-oriented slots 34 in the anchoring element 20 define
a flexible wall section 33 located between each slot. Each wall section 33 is more
flexible at its respective proximal end, in part because the wall section is defined
between slots that extend directly from the proximal end 22 of the anchoring element.
The distal ends of the respective wall sections 33 are co-extensive with the distal
end 24 of anchoring element 20.
[0015] Figure 1 also illustrates a suture retainer 48 located adjacent the distal end 24
of anchoring element 20. Suture retainer 48 is most preferably an aperture for receiving
an intermediate portion of a suture (i.e. a segment between the free ends of the suture).
This allows the anchoring element to be a so-called "slidable" suture anchor. The
suture retainer may be configured in a variety of other ways, including any number
of suture retaining configurations, such as a slit, a groove, a clip or wire and the
like (e.g., suture engaging slot 221 of stem 212, described above).
C. The Expander Element
[0016] Expander element 35 is substantially tubular, having opposed proximal 38 and distal
40 ends connected by way of a central axial channel 36, the axial channel defining
a longitudinal axis (D-D). The respective inner diameters of the expander element
35 and anchoring element 20 are of sufficient size to allow them to be loaded onto
stem 12, anchoring element 20 being engaged first, so that proximal end 22 of the
anchoring element 20 is engaged in facing relationship to distal end 40 of expander
element 35.
[0017] This is shown in Figure 2 which illustrates in partial cross-section the configuration
resulting when anchoring element 20 and expander element 35 are disposed by way of
stem 12 into a hole 41 drilled in a bone 42. The proximal end 22 of each of the flexible
wall sections 33 has a camming surface 44 that is designed to mate with a corresponding
camming surface 46 at the distal end of the expander element 35. The camming surface
46 of expander element 35 is preferably tapered or beveled, the taper ranging from
about 10 degrees to about 45 degrees, relative to axes (B-B) and (D-D). Most preferably,
the tapered camming surface is at an angle of about 30° degrees relative to these
longitudinal axes. Corresponding tapered camming surfaces 44 of the anchoring element
20 are also disposed at the proximal end 22 of wall sections 33.
[0018] Figures 3 and 4 illustrate operation of this suture assembly and the forces imposed
on the components of the assembly in order to set the suture anchor into a bone hole
41. Expander element 35 is substantially fixed at the bone surface 47 and this may
be accomplished by using an expander element 35 containing a flange 50 that is integral
with the proximal end 38 of element 35 and extending radially outwardly around the
periphery of the proximal end 38. In this embodiment, flange 50 serves as a support/countersink
to brace the expander element 35 against the bone surface 47 and against a housing
57 of the stem 12 (Shown in Figure 4) to provide a solid surface onto which a force
is exerted that is opposite to the tension force applied to stem 12.
[0019] When tension is applied to stem 12 (in the direction shown by arrow A), the stem
12 and anchoring element 20 are forced in the indicated direction (i.e. proximal to
the bone hole) but the expander element 35 remains substantially immobile within the
bone hole 41 as the result of a distally-applied counterforce (arrow X) exerted against
flange 50 by a distal end 59 of the stem housing 57 (See also Figure 6). A proximally
directed force that is substantially equal in magnitude and in direction to the stem
tension force (arrow A) is applied to the proximal end of anchoring element 20. The
anchoring element moves proximally in the bone hole and camming surfaces 44, 46 are
forced into mating engagement.
[0020] As shown in Figure 4, anchoring element 20 telescopes over the substantially fixed
expander element 35. In the embodiment illustrated, distal camming surfaces 46 of
expander element 35 remain substantially fixed in position within the bone hole and
proximal camming surfaces 44 of anchoring element 20 are forced to ride over them.
[0021] Wall sections 33 defined between the series of axially-oriented slots 34 are flexible
and will expand into the bone when the camming surfaces are mutually engaged and the
anchoring element 20 telescopes over the expander element 35 when tension is applied
to the stem 12. Wall sections 33 have proximal ends that are more flexible then other
portions thereof. As a result, expansion of the wall sections 33 by the telescoping
movement of the anchoring element 20 over the fixed expander element 35 results in
the wall sections 33 having a substantially arcuate cross section when fully deployed
and expanded in the bone, the proximal ends of the wall sections being driven radially
outward and in an oblique direction (i.e.; at an angle relative to the longitudinal
axis of the stem). The frangible portion 18 of stem 12 is adapted to break when the
flexible wall sections are in their fully expanded position. Once severed, the stem
12 may be removed from the rest of the assembly, leaving the anchoring element 20,
expander element 35 and attached suture (not illustrated) locked in the bone hole
(See Figure 5). The frangible portion 18 of insertion stem 12 is preferably located
at a distance above the distal end 14 of the stem so that, when the stem is removed,
the remaining severed stub of the insertion stem does not extend above the level of
the bone surface 47.
[0022] In other arrangements expander element 35 need not have a proximal flange 50. Figure
6 is a partial, plan section of a bone hole 41 into which a non-flanged expander element
35 is disposed. The distal end 59 of stem housing 57 is wide enough so that it is
partially coextensive with the bone hole 41 opening and thus simultaneously contacts
both the bone surface 47 and proximal end 38 of expander element 35. Functionally,
this configuration may be considered similar to that of Figure 3 because engagement
of proximal end 38 of expander element 35 and the distal end 59 of stem housing 57
also serve to set up a counterforce (arrow E) in opposition to the tension force applied
to the insertion stem 12, the counterforce sufficient to fix element 35 in position
within bone hole 41.
[0023] In further arrangements illustrated in Figure 7, distal portions of insertion stem
12 may include screw threads 52 for mating engagement with corresponding screw threads
54 on the inner surface 28 of anchoring element 20. Stem 12 includes a proximal slot
49 for engagement with a screwdriver. Expander element 35 may include proximal flange
50 and stem 12 is rotatable within the expander 35. Expander element 35 is countersunk
into the bone so that flange 50 rests upon a shoulder 51 defined in the wall 53 of
the bone hole 41. The screw threads 52,54 provide for positioning of the anchoring
element 20 in the hole 41 at its desired depth and for applying a desired telescoping
force to the anchoring element by turning the insertion stem 12 into the axial channel
26 of the anchoring element 20. In such a turnable screw thread configuration, illustrated
in Figure 8A, as the threaded insertion stem 12 is turned clockwise, the expander
element 35 remains fixed in the bone hole 41 by way of counterforce pressure against
flange 50, but the proximal end 22 of anchoring element 20 is forced to telescope
over the distal end 40 of expander element 35 as the threads on the insertion stem
are turned. Camming surfaces 44,46 engage and flexible wall sections 33 are expanded
into the bone 42. Once the anchoring element is fixed into the bone, the stem and
expander may be released by backing out the threaded stem (See Figure 8B).
[0024] In another arrangement of the assembly, the distal end 14 of insertion stem 12 and
the distal end 24 of anchoring element 20 are attached as an integral unit so that
only the expander element 35 need be loaded onto the insertion stem. Alternately,
the assembly may comprise the integral anchoring element and insertion stem and an
expander element that is molded to, or extruded integrally with, a distal end of a
housing as described below with reference to Figure 9.
[0025] The component parts of the suture anchor assembly may be fabricated by conventional
molding or extrusion procedures. Element 20 is preferably constructed of a biocompatible
material. The term "biocompatible" means that the anchoring element material is chemically
and biologically inert. Suitable materials for the anchoring element include, for
example, an implant grade high density polyethylene, low density polyethylene (PE
6010 and PE 2030); acetal (trademark "Delrin", manufactured by Dupont Chemical Co.)
and polypropylene (13R9A and 23M2: all made by Rexene. Dallas. Texas). Of these, PE
6010 and 13R9A have been FDA listed as class 6 materials.
[0026] The anchoring element may also be bioabsorbable. The term "bioabsorbable" refers
to those materials that are meant to be decomposed or degraded by bodily fluids, such
as, for example, blood and lymph. The anchoring element is preferably made from a
biodegradable polymer or copolymer of a type selected in accordance with the desired
degradation time. That time in turn depends upon the anticipated healing time of the
tissue which is the subject of the surgical procedure. Known bioabsorbable polymers
and copolymers range in degradation time from about 3 months for polyglycolide to
about 48 months for polyglutamic-co-leucine. A common bioabsorbable polymer used in
absorbable sutures is poly (L-lactide) which has a degradation time of about 12 to
18 months. The preferred anchoring element is comprised of an absorbable copolymer
derived from glycolic and lactic acids, such as a synthetic polyester chemically similar
to other commercially available glycolide and lactide copolymers. Glycolide and lactide
degrade and absorb in the body by hydrolysis into lactic acid and glycolic acid which
are then metabolized by the body.
[0027] The following Table set forth below lists polymers which are useful for the bioabsorbable
material employed for the anchoring element, and other parts of the bone fastener
as described below. These polymers are all biodegradable into water-soluble, non-toxic
materials which can be eliminated by the body.
TABLE
| Polycaprolactone |
Poly (L-lactide) |
| Poly (DL-lactide) |
Polyglycolide |
| 95:5 Poly (DL-lactide-co-glycolide) |
Polydioxanone |
| Polyesteramides |
|
| Copolyoxalates |
|
| Polycarbonates |
|
| Poly (glutamic-co-leucine) |
|
| 90: 10 Poly (DL-lactide-co-glycolide) |
|
| 85:15 Poly (DL-lactide-co-glycolide) |
|
| 75:25 Poly (DL-lactide-co-glycolide) |
|
| 50:50 Poly (DL-lactide-co-glycolide) |
|
| 90: 10 Poly (DL-lactide-co-caprolactone) |
|
| 75:25 Poly (DL-lactide-co-caprolactone) |
|
| 50:50 Poly (DL-lactide-co-caprolactone) |
|
D. Apparatus for Deployment
[0028] A preferred deployment apparatus of the suture anchor retains the insertion stem,
expander element and anchoring element prior to emplacement and includes a tool for
exerting tension on the insertion stem. The preferred apparatus also allows for separating
the insertion stem and expander element from the anchoring element after the frangible
section is severed.
[0029] Figure 9 is a partial, plan view illustrating one deployment apparatus and its mode
of operation. The insertion stem 12 is pre-loaded with the anchoring element 20 and
the expander element 35 and the stem 12 is then placed into an apparatus similar to
a pop-rivet gun 56. The stem 12 is encased within a housing 57 of the apparatus so
that a toothed collet 58 or other similar grasping means engages the insertion stem
12. The anchor assembly is then placed in a hole 41 drilled into a bone 42 and a distal
end 59 of the housing 57 is pressed into contact with the bone surface 47. This helps
fix the flange 50 of expander element 35 into position at the bone surface 47. Activation
of the apparatus 56 retracts the insertion stem 12 proximally (arrow A) to induce
tension on the stem. The camming surfaces 44,46 of the respective anchor 20 and expander
35 elements come into telescoping contact and the flexible wall sections 33 of anchoring
element 35 are set into the bone 42. Tension is continually exerted on stem 12 until
the stem shears off from the remainder of the suture assembly at the frangible section
18. In those embodiments of the apparatus in which expander element 35 is molded or
extruded integrally as one-piece with distal end 59 of housing 57, once the stem is
sheared the rest of the stem and the expander element are removed to leave the anchoring
element with its attached suture ( and severed stem) in the bone. In the other embodiments
where the expander element is not integral with the housing, the severed stem and
the expander element are left in the bone.
[0030] Figure 10 illustrates another emplacement apparatus and its mode of operation. The
apparatus includes a housing 57 which encloses insertion stem 12 held co-axially in
place by a toothed collet 58. The proximal end 60 of the housing 57 is engaged with
arms 90 of a push rod 92 in the shape of an inverse T. Proximal end 60 of housing
57 also includes an aperture (not shown) for receiving the collet 58. The collet 58
is integral with a bayonet-type connector 64 that allows the combined connector and
housing to be removably attached to a hand held means 120 ( See Figure 11). The stem
12 is thus co-axially arranged around the collet 58 and the collet can move co-axially
within the housing 57. The anchoring element 20 and expander element 35 are threaded
on the stem and the stem 12 is positioned in the collet.
[0031] Referring now to Figure 11, the hand-held means 120 is of similar design to the hand
held means described in commonly assigned
US patent 5,725,529 Briefly, the hand held means 120 consists of two handle elements 122, 124 slidably
engaged to provide a comfortable pistol grip 126 by which handle element 124 can be
moved in a proximal-distal direction with respect to the handle element 122 by squeezing
the pistol grip 126. The distal end 123 of the handle element 122 is adapted for removably
mounting the bayonet connector 64. The distal end 125 of handle element 124 includes
a rod 129 whose distal end 127 abuts push rod 92 when the handle elements are assembled
and the connector 64 is mounted onto end 123 of handle element 122.
[0032] With the apparatus so assembled, the surgeon grasps the apparatus by the pistol grip
126, and directs the anchoring assembly into the predrilled hole in the bone. The
distal end 59 of the housing 57, and optionally the flange 50 of the expander element,
engage the bone surface. Then, the surgeon squeezes the grip 126 sliding the handle
124 frontward with respect to the handle element 122. as indicated by the arrow 131.
Rod 129 presses against push rod 92 in the distal direction (arrow X in Figure 10)
and the downward force is transmitted through the inverse-T arms 90 to the housing
57 and against the bone surface 47. At the same time, the connector 64 and attached
co-axially moveable stem 12 are urged proximally (arrow A), translating the distal
force on the push rod 92 to a proximal, tensioning force on the insertion stem 12.
E. Apparatus for Removal
[0033] A significant feature of the present suture assembly is that the anchor element may
be removed after deployment by forcing the anchoring element distally back down into
the bone hole 41. A removal apparatus as illustrated in Figure 12 consists of a cannulated
rod 60 whose distal end 62 is adapted to engage with distal end 24 of anchoring element
20 or with the severed end of the insertion stem 12 at the frangible section. As illustrated,
rod 60 is engaged with anchoring element 20 and pressed distally (arrow F) to drive
the anchor element 20 back down into the bone hole until the flexible wall sections
33 are substantially parallel to the longitudinal axis (F-F) of the bone hole and
extend in a proximal -distal direction. A sheath 64 is then slid (arrow G) over the
rod 60 to engage outer peripheral surfaces of the anchoring element 20. This engagement
may be facilitated by a series of detents (not shown) located on the distal end 65
of sheath 64 which fixedly engages the anchoring element. The anchoring element, any
insertion stem remaining, and sheath are removed (arrow H) from the bone hole as a
unit.
F. Methods
[0034] One method, although by no means the only method, for attaching soft tissue to bone
will be described below.
[0035] To attach soft tissue to bone, a surgeon takes the sharpened proximal end of a K-wire
(manufactured, for example, by Kirschner Medical Company) and spears the tissue that
is to be attached. The proximal end of the K-wire is then placed over the bone surface
at the approximate site of attachment. The K-wire is then drilled into the bone at
that site. If the location is where the surgeon wants it, the surgeon then threads
a cannulated drill of the appropriate size over the K-wire. A hole is then drilled
into the bone using the cannulated drill. Then drill and K-wire is are removed. It
will be understood that the use of a K-wire is not essential to this method of drilling
a bone hole.
[0036] Whether or not the K-wire is used, the suture assembly of the invention is then loaded
within an emplacement apparatus (for example, described above with reference to Figures
9-11). The assembly is pressed downwards through the tissue and into the bone hole
so that the anchoring element is emplaced into the bone hole. If the surgeon decides
that the orientation of the assembly and soft tissue is correct, the emplacement apparatus
is triggered by applying a tensional force to the insertion stem so that the proximal
end of the anchoring element telescopes over the distal end of the expander element.
The outer, flexible surfaces of the anchoring element engage with the bone and the
insertion stem is released from the anchoring element to set the anchor element within
the bone hole. The apparatus is removed. Other variations on this technique include
first drilling a bone hole and then punching a hole through the soft tissue. The tissue
is then moved over the bone hole using, for example, a K-wire or a suture passer grasping
device.
[0037] It is an important feature of the suture anchor is that the force needed to telescope
the anchoring element may be substantially continuous and spread out over time. The
anchoring element is telescoped over the expander element with a compressive motion
that is axially delivered in a direction substantially parallel to the longitudinal
axis of the insertion stem. Thus, the apparatus for deploying the present assembly
requires an advancing drive mechanism which lacks any impact or impulse characteristics.
[0038] The components of the bone fastener of the invention may be included in a surgical
fastener kit. An exemplary kit may include an anchoring element of the invention;
an insertion stem of the invention and a holder for engaging with the anchoring element,
the holder capable of maintaining the anchoring element in position with the bone
opening. Other embodiments of the kit may include a grasper/manipulator for grasping
free ends of the suture to pass the suture through soft tissue. A K-wire, drill and
drill guide may also be also included. Preferably, the kit is encased in a sterile
tray or other receptacle for use by an operator at a site.
[0039] The invention will now be illustrated by the following non-limiting examples.
[0040] Three different polysulfone anchor elements were fabricated by machining polysulfone,
extruded bar stock. The elements included several of 2.8 mm length (wall thickness
of 0.018, 0.024 and 0.035 inches); 3.5 mm long (0.018 " wall thickness) and 3.8 mm
long (0.025" wall thickness). Anchors were attached to sutures and were set using
the procedures described herein into an artificial bone made of foam made by Sawbones,
Inc., P.O. Box 589, Vashon, Washington 98070. Tension was applied to the sutures by
a stainless steel hardened wire attached to the back of the anchor. Tension was measured
by a force gauge. The foam/suture assembly was observed for anchor failure. Results
are presented below in the Table.
| Diameter |
Wall |
Force Observations |
|
| (mm) |
(inches) (mm) |
(lb) (kg) |
|
| 2.8 |
0.018 0.46 |
29.0 13.2 |
Failure; 3 wall sections bent back on themselves; foam cone pulled out 0.64 cm (0.25
") diameter |
| |
|
|
|
| |
0.024 0.61 |
32.8 14.9 |
Failure; 4 wall sections bent back on themselves; foam cone pulled out 0.58 cm (0.23
") diameter |
| |
|
|
|
| |
0.035 0.89 |
33.4 15.2 |
Failure; 4 wall sections bent back on themselves; foam cone pulled out 0.58 cm (0.23
") diameter |
| |
|
|
|
| 3.5 |
0.018 0.46 |
37.2 16.9 |
Failure; anchor broken with half pulled through; wall sections on the broken half
were straight. |
| |
|
|
|
| |
0.018 0.46 |
43.0 19.5 |
Failure; wall sections bent back over themselves |
| |
|
|
|
| 3.8 |
0.025 0.64 |
33.0 15.0 |
No anchor failure; foam bone wedge pulled out and only 2 wall sections were spread;
foam pullout 1.27cm (.5 ") diameter/0.64 cm (.25") deep |
| |
|
|
|
| |
0.025 0.64 |
51.0 23.1 |
No anchor failure; all wall sections spread; foam bone wedge pulled out; 1.91 cm (.75")
diameter 1.27 cm (.25") deep |
G. Further Embodiments
[0041] Figure 13A depicts an insertion stem 212 according to a preferred practice of the
invention. As with the stem 12 depicted in Figure 1 and described in connection therewith,
the stem 212 is elongate and has distal 214 and proximal 216 ends. Distal end 214
is formed with a shoulder (or head) 215 designed to engage a distal end 224 of an
anchoring element 220. The insertion stem 212 has a frangible portion 218, disposed
some distance proximal from end 214, and designed to sever or break when sufficient
tension is applied to the stem 212 in a proximal direction parallel to longitudinal
axis of the stem. As above, the frangible portion may be other than a thin-walled
section of stem 12 and may include a series of spokes or webbing or a plurality of
very attenuated membranes.
[0042] The stem 212 includes threading 217 for threaded engagement by the deployment apparatus
of Figures 9 - 11. Ridges 219, which are disposed distal of frangible portion 218
of stem 212, provide ratchet-like retention of the expander element 235 in the assembled
suture anchor assembly, thereby preventing unwanted or excess movement of the expander
element relative to the anchoring and insertion elements. Suture engaging slot 221
provides a track in which a loop of a suture may be retained, thereby providing additional
control over the suture, e.g., for purposes of knot-tying.
[0043] With continued reference to Figure 13A, like anchoring element 20 depicted in Figure
1 and described in connection therewith, anchoring element 220 is substantially tubular,
having opposed proximal 222 and distal 224 ends connected by way of a central axial
channel (not shown) extending from the proximal end 222 to the distal end 224. Distal
end 224 engages with shoulder 215 of stem 212. As above, element 220 has inner and
outer peripheral surfaces forming a wall. Defined in the wall, and in communication
with the axial channel, are a series of axially-oriented slots 234 that begin at the
proximal end 222 and extend some distance towards the distal end 224. Each of the
series of axially-oriented slots 234 in the anchoring element 220 define a flexible
wall section 233 located between each slot. The anchoring element can include a plurality
of slots 234 and, thereby, a corresponding number of wall sections 233. Although the
number of slots (and wall sections) can range from 2 to 10 (or upwards), a preferred
number of slots (and wall sections) is three or four.
[0044] Referring to Figure 14, the anchoring element 220 is shown in cross-section. As evident
in the drawing, each wall section 233 tapers gradually from a base portion 231 to
the proximal end 222. That taper can be, for example, 0° to 20° degrees and, preferrably,
is about 8°. Camming surfaces 244 at the tips of the walls have more pronounced tapers.
These can range, e.g., from 30° to 75° and is, preferrably, about 60°.
[0045] Referring to Figure 13A, a preferred expander element 235, like element 35 depicted
in Figure 1 and described in connection therewith, has opposed proximal 238 and distal
240 ends connected by way of a central axial channel 236. The diameter of channel
236 is of sufficient size to allow it to be loaded onto stem 212, along with anchoring
element 220, so that proximal end 222 of the anchoring element 220 is engaged in facing
relationship to distal end 240 of expander element 235. This is shown in Figure 13B,
which illustrates in partial cross-section the configuration resulting when anchoring
element 220 and expander element 235 are are readied for assembly on stem 212.
[0046] Referring Figure 14. the proximal end 222 of each of the flexible wall sections 233
of anchoring element 220 has a camming surface 244 that is designed to mate with a
corresponding camming surface 246 at the distal end of the expander element 235. The
camming surface 246 of expander element 235 is tapered at approximately 45°, though
that taper can be as little as about 10° and as much as 60°.
[0047] To prevent the anchoring element 220 from telescoping, or "camming," too far over
the expander element 235, the expander element 235 includes projections or wings 237,
each of which corresponds with a slot 234 of anchoring element 220. The wings 237
slidingly engage with slots 234 as the suture anchor system is being assembled. This
permits the anchoring element 220 to telescope or cam over expander element 235 until
the wings 237 reach the bottoms 229 of their respective slots 234. As a less preferred
alternative, the anchoring element 220 can include an internal shoulder, or other
such protrusion, that prevents the anchoring element 220 from telescoping or camming
too far over expander element 235.
[0048] The expander element 235 is shown in side view at Figure 15. There, it is seen that
the element 235 has a height (i.e., length along the longitudinal axis) less than
that of the sides 233 of the anchoring element 220. Preferrably, the height of element
235 is approximately one-half that of the sides 233 and, still more preferably, a
height substantially equal to that of the camming surface 244.
[0049] Further arrangements incorporate refinements that facilitate fabrication of a smaller
suture anchoring assembly of the type used in facial reconstructive surgery and other
surgeries involving thinner bone structures. These refinements strengthen the assembly
by reducing the stresses placed on its components of the assembly and, thereby, prevent
failure of the anchoring assemblies during and subsequent to emplacement in the bone
structures.
[0050] At the outset, referring to Figure 16. the insertion stem 212 of a suture anchor
assembly according to the present invention incorporates a suture retaining slot 221
that provides a track in which the suture (not shown) is slidingly engaged as it loops
over the head 215 of the insertion stem. This slot prevents the suture from sliding
off the head 215 during suture knot-tying or during and subsequent to emplacement
of the anchor assembly in the bone. In embodiments were the head 215 is integral with
the anchoring element, the suture retaining slot may be said to reside at the distal
end of the anchoring element 220.
[0051] It will be appreciated that looping a suture over the head 215 provides added strength
to the overall assembly. Particularly, when the suture is under tension (e.g., during
and subsequent to tying), the suture retaining slot is in compression, as are head
215 and adjacent portions of the stem 212. This configuration gives the suture retainer
(and, therefore, the assembly as a whole) greater strength then found in configurations
(such as where a suture-retaining aperture is disposed at the proximal end of the
insertion stem 212) in which the suture retainer is placed under tension when the
suture itself is under tension. Alternatives to the illustrated slot include placing
an aperture (e.g., hole) through which the suture can be tied, or a shoulder around
which the suture can be looped, at locations on anchoring element 220 or insertion
stem head 215 that are distal to the slot ends 229 of the assembled suture anchor
device.
[0052] With further reference to Figure 16, a track 314 extends from the slot 221 toward
the proximal end of the stem 212. This serves to guide and protect the suture from
being crimped by the anchor assembly during and subsequent to its emplacement in bone.
The slot and track widths are sized in accord with the expected suture gauge. Preferably,
the width is such that the suture can slide freely without excessive width-wise play.
The slot and track depths are likewise determined by the expected suture gauge.
[0053] Figure 17 depicts a side cut-away view of insertion stem 212 of a suture anchor assembly
according to the present invention and shows the shape of the support base (or floor)
316, at the base of the slot 221 and track 314, supporting the suture. As illustrated,
the support base 316 runs longitudinally, parallel to the major axis of the stem 212
and ends in a tear drop shape 318 at the distal end of the stem, i.e., at slot 221,
where the suture loops over head 215.
[0054] The tear drop shape is advantageous over a conventional rectilinear shape insofar
as the tear drop distributes over a greater surface area the compressional load applied
to the head 215 by the suture, e.g., during and subsequent to its being tied. As shown
in the drawing, the tear drop opens at an angle of 30° - 60° and, more preferably,
of 41° beginning a point distal to the proximal side 320 of the head. As further illustrated
the "corners" of the tear drop 318 define a radius R
1 of 2.5×10
-3-5×10
-2cm (0.001 0.020 inches) and, preferably, 2.5×10
-2cm (0.010 inches) for a #2 suture. Proportionally sized radii can be selected for
where the expected suture gauge differs from this.
[0055] Referring back to Figure 16, the stem 212 incorporates a chamfer at the junction
of the elongate portion of the stem and head 215. The chamfer 312, which is angled
at 20° - 70° and, more preferably, 45°, also serves to reduce the concentration of
tensional stress on head 215 during and subsequent to emplacement of the anchor assembly
in bone.
[0056] A used herein, the term "chamfer" refers to conventional straight-edge chamfers,
as well as blend radii.
[0057] According to the invention, the stem 212 incorporates a reverse taper 310 in place
of ridges 219 discussed above. The taper 310, which is exaggerated in the drawing
for visualization purposes, describes an included angle of 1° - 10° and, preferably,
of 2°, relative to the longitudinal axis of the stem 212. As above, the reverse taper
serves to prevent unwanted or excess movement of the expander element relative to
the anchoring and insertion elements.
[0058] In order to withstand the stresses placed on the walls 233 and slot bases 229 of
the suture anchoring assembly and, especially, smaller suture anchoring assemblies,
the anchoring element incorporates a number of features to distribute the stresses
of emplacement. This gives smaller assemblies, which may be constructed from polymers
and copolymers (as described above), greater holding strength without risk of failure.
As shown in Figures 18 and 19, stress distribution is accomplished by rounding, or
chamfering, stress-bearing edges of the walls 233 and slots bases 229, as well as
by tapering the walls, in order to distribute applied loads.
[0059] For example, as shown in Figure 18, the distal ends 229 of the slots of anchoring
element 220 are rounded. This reduces stress on, and thereby prevents failure of,
the anchoring element 220 in the region adjacent to those rounded distal ends. As
illustrated, the rounded ends of the slots 234 define radii R
2 of 2.5×10
-3-5×10
-2cm (0.001 - 0.020 in) and, preferably, 2.5×10
-2 cm (0.010 in) for a three-wing or four-wing polymer anchor having an outside diameter
of 3.5 mm, an inside diamter of 2 mm, an overall length of 5.5 mm, and a wing length
of 3 mm. Proportionally sized radii can be selected for anchoring elements whose dimensions
differ from this.
[0060] As further shown in Figure 18, the slots 234 are tapered. Particularly, they are
wider at the proximal end then at the distal end. The degree of taper may vary from
0° - 10° and, preferably, is about 2°. This taper also reduces the stress on, and
thereby prevents failure of, the anchoring element 220 in the region adjacent to the
distal ends of the slots 234.
[0061] Figure 19 is a top view of a preferred anchoring element 220. As shown in the drawing,
the edges of wall sections 233 are chamfered to reduce stress during and subsequent
to emplacement of the assembly in bone. More particularly, each wall section 233 is
chamfered along its inner-top edge 330, as well as along the edges of the slot 234
that defines its inner-side edges 332, as shown. Chamfering along the inner-top edge
330 is preferably accomplished via a blend radius.
[0062] For a like-sized anchoring element, the inner-side edges 332 are also chamfered by
a blend radius of. e.g., of 2.5×10
-3-5×10
-2cm (0.001 - 0.020 inches) and, preferably, 2.5×10
-2cm (0.010 inches) for a three-wing or four-wing anchor having dimensions as specified
above. Again, proportionally sized radii can be selected for anchoring elements whose
dimensions differ from this. This chamfering continues along the entire inside edge
of each slot 234, including the inside edge 334 at the bottom 229 of each slot.
[0063] Referring to Figure 20, a preferred expander element 235, can have camming surfaces
340 that are rounded in order to mate with the chamfered inner-top edge 330 of expander
element 220. As above, the surface 340 can have an overall angle tapered at approximately
45° (or little as about 10° and as much as 60°). It is rounded to a degree sufficient
to allow the wings of the anchoring element to cam over the expander element when
opposing force is applied to the anchoring element.
[0064] Figure 21 depicts a suture anchor assembly incorporating two anchoring elements for
added strength. The assembly includes, stem 212, anchoring element 220 and expander
element 235, as well as additional anchoring element 350. As shown in the drawing,
the additional anchoring element 350 is disposed between expander element 235 and
the anchoring element 220. Element 350 is constructed in the same manner as element
220 except insofar as its distal end 352 has chamfered camming surfaces 354 similar
to surfaces 340 of expander element 235. As above, those camming surfaces 354 can
be straight chamfers or blended radii. In either event the surfaces are angled and/or
rounded to a sufficient degree allow the wings of the anchoring element 220 to cam
over the distal end 352 of element 350 upon assembly of the device, as shown in Figure
22.
[0065] With reference to Figure 21, it will be appreciated that a suture anchor assembly
according to the invention, more generally, may include a plurality of tubular anchoring
elements 220, 350, loaded "in series" on the stem 212 as shown. A distal-most anchoring
element 220 has its distal end in engagement with the proximal side 320 of the stem's
head, while the other anchoring elements 350 having their distal ends in engagement
with a proximal end of the adjacent anchoring element.
[0066] Upon assembly, the proximal-most anchoring element 350 moves proximally within the
bone hole (not shown) from a first position, where that anchoring element's proximal
end is engaged with the distal end of the expander element 235, to a second position,
where the proximal end cams over the distal end so that flexible wall sections expand,
as shown in Figure 22, into a wall of the bone hole. Likewise, upon assembly, the
other anchoring element 220 is adapted for proximal movement within the bone hole
from its respective first position, where its proximal end is engaged with the distal
end of the adjacent anchoring element 350, to a respective second position, where
that proximal end cams over that distal ends, as shown in Figure 22, so that the respective
flexible wall sections expand into a wall of the bone hole.
[0067] - Although Figures 21 and 22 show only two anchoring element, those skilled in the
art will appreciate that still further embodiments of the invention may include three
or more anchoring elements.
[0068] It should be understood that various changes and modifications of the preferred embodiments
may be made within the scope of the invention. Thus, for example, it will be appreciated
that, while the illustrated embodiments are constructed of polymers, copolymers, and
bioabsorable materials, they can also be contstructed of metals and other biocompatible
materials. Thus it is intended that all matter contained in the above description
be interpreted in an illustrative and not limited sense.
1. A suture anchor assembly, comprising:
an insertion stem (212) having a frangible portion (218) adjacent to a distal end
(214) thereof;
a tubular anchoring element (220) having defined therein an axial channel for loading
onto the stem (212) and having a distal end for engagement with the distal end of
the stem (212), the anchoring element (220) including inner and outer peripheral surfaces
forming a wall therebetween, the wall having defined therein a plurality of axially-oriented
slots (234) in communication with the axial channel, the slots (234) beginning at
a proximal end of the element and extending distally, wherein the plurality of slots
(234) further define a plurality of flexible wall sections disposed between adjacent,
axially oriented slots (234);
a tubular expander element (235) having defined therein an axial channel, the expander
element (235) being adapted for loading onto the stem (212) and having a distal end
for engagement with the proximal end of the tubular anchoring element (220), wherein
the tubular anchoring element (220) is adapted for proximal movement within a bone
hole from a first position, where proximal end thereof is engaged with the distal
end of the expander element (235), to a second position, where the proximal end of
the tubular anchoring element (220) cams over the distal end of the expander element
(235) so that flexible wall sections expand into a wall of the bone hole; and a suture
retainer (221) coupled to the anchoring element (220),
characterised in that the insertion stem (212) comprises
a reverse taper (310) describing an included angle of 1°-10° relative to a longitudinal
axis of the stem (212) disposed distal of the frangible portion (218) and positioned
to engage with the expander element (235) when in the second position so as to prevent
unwanted or excess movement of the expander element (235) relative to the anchoring
element (220).
2. A suture anchor assembly according to claim 1,
wherein the distal end of the stem (212) comprises a slot disposed at the distal end
of the anchoring element (220), and/or
wherein the distal end of the stem (212) has a base that is rounded at the distal
end of the anchoring element (220), and/or
wherein the distal end of the stem (212) has a base that is tear drop shaped.
3. A suture anchor assembly according to claim 1, wherein either:
a) the reverse taper (310) is disposed distal to a distal end of the axially-oriented
slots (234) defined in the walls, and, optionally, wherein the distal end of the stem
(212) comprises any of a slot, shoulder and aperture; or
b) the anchoring element (220) comprises means for distributing one or more stresses
placed on the anchoring element (220) by emplacement of the anchor assembly into the
bone, and, optionally, wherein any of:
i) the means for distributing stresses comprises an inner edge of at least one of
the walls at a slot therein having at least one of a chamfer and a blend radius;
ii) the means for distributing stresses comprises a distal end of at least one of
the axially-oriented slots (234) that is at least one of radiused and rounded;
iii) the means for distributing stresses comprises inner edges of the walls at the
slots (234) therein having at least one of a chamber and a blend radius, and distal
ends of the axially-oriented slots (234) being at least one of radiused and rounded;
and
iv) the means for distributing stresses comprises at least one of the axially-oriented
slots (234) being tapered.
4. A suture anchor assembly as claimed in claim 1 and in which:
the expander element (235) has a proximal end;
the anchoring element (220) is arranged for movement within a bone hole from a first
position, where the proximal end of the anchoring element (220) is in facing relationship
to the distal end of the expander element (235), and then to a second position, where
the anchoring element (220) moves within the bone hole so that its proximal end cams
over the distal end of the expander element (235), forcing the proximal end of the
anchoring element (220) into a wall of the bone hole; and including:
means for distributing one or more stresses placed on the anchoring element (220)
by emplacement of the anchor assembly into the bone.
5. A suture anchor assembly according to claim 4, wherein any of:
a) the means for distributing stresses comprises an inner edge of at least one of
the walls at a slot therein having at least one of a chamfer and a blend radius;
b) the means for distributing stresses comprises a distal end of at least one of the
axially-oriented slots (234) that is at least one of radiused and rounded;
c) the means for distributing stresses comprises inner edges of the walls at the slots
(234) therein having at least one of a chamfer and a blend radius, and distal ends
of the axially-oriented slots (234) being at least one of radiused and rounded; and
d) the means for distributing stresses comprises at least one of the axially-oriented
slots (234) being tapered.
6. A suture anchor assembly according to claim 1, further comprising:
one or more additional anchoring elements (220), each having defined therein an axial
channel for loading onto the stem (212), the anchoring elements (220) being arranged
in series on that stem (212); and
a distal-most anchoring element (220) having a distal end for engagement with a proximal
end of a distal end of the stem (212), each of the other anchoring elements (220)
being arranged in series on that stem (212);
each anchoring element (220) including inner and outer peripheral surfaces forming
a wall therebetween, the wall having defined therein a plurality of axially-oriented
slots (234) in communication with the axial channel, the slots (234) beginning at
a proximal end of the element and extending distally, wherein the plurality of slots
(234) further define a plurality of flexible wall sections disposed between adjacent,
axially-oriented slots (234);
wherein the distal end of the tubular expander is configured for engagement with a
proximal end of a proximal-most anchoring element (220);
wherein the proximal-most anchoring element (220) is adapted for proximal movement
within a bone hold from a first position, where a proximal end thereof is engaged
with the distal end of the expander element (235), to a second position, where the
proximal end of that anchoring element (220) cams over the distal end of the expander
element (235) so that flexible wall sections expand into a wall of the bone hole;
and
wherein the other anchoring elements (220) are adapted for proximal movement with
a bone hole from respective first positions, where their respective proximal are engagement
with distal ends of respective adjacent anchoring elements (220), to respective second
positions, where the respective proximal ends cam over respective distal ends so that
the respective flexible wall sections expand into a wall of the bone hole.
7. A suture anchor assembly according to claim 4, further comprising:
one or more additional anchoring elements (220), each having proximal and distal ends,
and each for movement within a bone hole, wherein the first position is where a proximal
end of the anchoring element (220) is in facing relationship to the distal end of
an adjacent one of the expander element (235) and an anchoring element (220), and
wherein the second position is where the anchoring element (220) moves within the
bone hole so that its proximal end cams over the distal end of an adjacent one of
the expander element (235) and an anchoring element (220), forcing the proximal end
of the anchoring element (220) into a wall of the bone hole.
8. A suture anchor assembly according to claim 7, wherein the distal end of the stem
(212) comprises a slot disposed at the distal end of the selected anchoring element
(220), and, optionally, wherein the distal end of the stem (212) has a base that is
rounded at the distal end of the selected anchoring element (220), and, yet further
optionally, wherein the distal end of the stem (212) has a base that is tear drop
shaped.
9. A suture anchor assembly according any one of claims 6 and 8 and either:
a) wherein the reverse taper (310) is disposed distal to a distal end of the axially-oriented
slots (234) defined in the walls of the selected anchoring element (220), and, optionally,
wherein the distal end of the stem (212) comprises any of a slot, shoulder and aperture;
or
b) at least a selected one of the anchoring elements (220) includes means for distributing
one or more stresses placed thereon by emplacement of the anchor assembly into the
bone, and, optionally, wherein any of:
i) the means for distributing stresses comprises an inner edge of at least one of
the walls at a slot therein having at least one of a chamfer and a blend radius;
ii) the means for distributing stresses comprises a distal end of at least one of
the axially-oriented slots (234) that is at least one of radiused and rounded;
iii) the means for distributing stresses comprises inner edges of the walls at the
slots (234) therein having at least one of a chamfer and a blend radius, and distal
ends of the axially-oriented slots (234) being at least one of radiused and rounded;
and
iv) the means for distributing stresses comprises at least one of the axially-oriented
slots (234) of the selected anchoring (220) being tapered.
10. A suture anchor assembly according to claim 6,
wherein, optionally, the distal end of the stem (212) comprises a slot disposed at
the distal end of a selected anchoring element (220), and yet further optionally,
wherein the distal end of the stem (212) has a base that is rounded at the distal
end of the selected anchoring element (220), and, yet further optionally,
wherein the distal end of the stem (212) has a base that is tear drop shaped.
11. A suture anchor assembly according to any of claims 4 and 7, wherein the expander
element (235) further comprises at least one projection, and further wherein the plurality
of axially-oriented slots (234) are in communication with the at least one projection
to prevent excess camming over the expander element (235).
1. Nähfadenankeranordnung, mit folgendes umfassend:
einen Einbringungsschaft (212), der einen zerbrechbaren Bereich (218) angrenzend an
sein distales Ende (214) aufweist,
ein rohrförmiges Verankerungselement (220), in dem ein axialer Kanal zum Aufbringen
auf den Schaft (212) gebildet ist und dessen distales Ende mit dem distalen Ende des
Schaftes (212) in Eingriff bringbar ist, wobei das Verankerungselement (220) eine
innere und eine äußere zwischen sich eine Wand bildende Umfangsfläche aufweist, in
der Wand eine Mehrzahl von axial ausgerichteten Schlitzen (234) in Verbindung mit
dem axialen Kanal gebildet ist, die Schlitze (234) am proximalen Ende des Elements
beginnen und distal verlaufen und wobei die Mehrzahl von Schlitzen (234) ferner eine
Mehrzahl von flexiblen Wandabschnitten ausbildet, die zwischen benachbarten, axial
ausgerichteten Schlitzen (234) angeordnet sind,
einem rohrförmiges Expanderelement (235) mit einem darin gebildeten axialen Kanal,
wobei das Expandererlement (235) auf den Schaft (212) aufbringbar ist und ein distales
Ende für einen Eingriff mit dem proximalen Ende des rohrförmigen Verankerungselements
(220) aufweist, und wobei das rohrförmige Verankerungselement (220) geeignet ist für
eine proximale Bewegung in einem Knochenloch von einer ersten Position, in der sein
proximales Ende mit dem distalen Ende des Expanderelements (235) in Eingriff steht,
in eine zweite Position, in der das proximale Ende des rohrförmigen Verankerungselements
(220) das distale Ende des Expanderelements (235) übergreift, derart, dass sich flexible
Wandabschnitte in die Wand des Knochenloches hinein aufweiten und
mit einen mit dem Verankerungselement (220) verbundenen Nähfadenhalter (221), dadurch gekennzeichnet, dass
der Einbringungsschaft (212) eine Gegenkonizität (310) umfasst, die einen eingeschlossenen
Winkel von 1° bis 10° in Bezug auf eine Längsachse des Schaftes (212) beschreibt,
in einer Anordnung und Positionierung für einen Eingriff mit dem Expanderelement (235),
wenn sich dieses in der zweiten Position befindet, um so eine unerwünschte oder zu
große Bewegung des Expanderlements (235) in Bezug auf das Verankerungslement (220)
zu verhindern,
2. Nähfadenankeranordnung nach Anspruch 1,
bei der das distale Ende des Schaftes (212) einen am distalen Ende des Verankerungslements
(220) angeordneten Schlitz aufweist und/oder
bei der das distale Ende des Schaftes (212) eine Basis besitzt, die am distalen Ende
des Verankerungselements (220) abgerundet ist, und/oder
bei der das distale Ende des Schaftes (212) eine Basis besitzt, die wie ein Tränentropfen
geformt ist.
3. Nähfadenankeranordnung nach Anspruch 1, bei der entweder
a) die Gegenkonizität (310) distal zum distalen Ende der axial ausgericheten, in den
Wänden gebildeten Schlitze (234) angeordnet ist und wahlweise das distale Ende des
Schaftes (212) eines der Merkmale eines Schlitzes, einer Schulter und einer Öffnung
aufweist, oder
b) das Verankerungselement (220) Mittel zum Verteilen einer oder mehrerer Beanspruchungen
umfasst, denen das Verankerungselement (220) durch Einsetzen der Ankeranordnung in
den Knochen ausgesetzt ist, und wobei wahlweise eines der folgenden Merkmale gegeben
ist:
i) das Mittel zum Verteilen von Beanspruchungen besteht darin, dass ein Innenrand
zumindest einer der Wände an einem in diesen befindlichen Schlitz zumindest eines
der Merkmale einer Fase und eines gemischten Radius aufweist,
ii) das Mittel zum Verteilen von Beanspruchungen besteht darin, dass ein distales
Ende von zumindest einem der axial ausgerichteten Schlitze (234) zumindest mit einem
der Merkmale einer Radius- und einer Rundungsausbildung versehen ist,
iii) das Mittel zum Verteilen von Beanspruchungen besteht darin, dass Innenränder
der Wände an den in diesen befindlichen Schlitzen (234) zumindest eines der Merkmale
einer Kammer und eines gemischten Radius aufweisen, und distale Enden der axial ausgerichteten
Schlitze (234) zumindest mit einem der Merkmale einer Radius- und einer Rundungsausbildung
versehen sind, und
iv) das Mittel zum Verteilen von Beanspruchungen besteht darin, dass zumindest einer
der axial ausgerichteten Schlitze (234) verjüngt ist.
4. Nähfadenankeranordnung nach Anspruch 1, bei der
das Expanderelement (235) ein proximales Ende aufweist,
das Verankerungselement (220) in einem Knochenloch von einer ersten Position, in der
das proximale Ende des Verankerungselements (220) in Gegenüberlage zum distalen Ende
des Expanderelements (235) steht, und sodann in eine zweite Position bewegbar ist,
in der sich das Verankerungselement (220) im Knochenloch bewegt, derart, dass sein
proximales Ende das distale Ende des Expanderelements (235) übergreift und damit das
proximale Ende des Verankerungselements (220) in die Wand des Knochenloches eindrückt
und
Mittel zum Verteilen einer oder mehrerer Beanspruchungen vorgesehen sind, denen das
Verankerungselement (220) durch Einbringen der Ankeranordnung in den Knochen ausgesetzt
ist.
5. Nähfadenankeranordnung nach Anspruch 4, bei der eines der folgenden Merkmale gegeben
ist:
a) das Mittel zum Verteilen von Beanspruchungen besteht darin, dass ein Innenrand
von zumindest einer der Wände an einem in diesen vorgesehenen Schlitz zumindest eines
der Merkmale einer Fase und eines gemischten Radius aufweist,
b) das Mittel zum Verteilen von Beanspruchungen darin besteht darin, dass ein distales
Endes von zumindest einem der axial ausgerichteten Schlitze (234) zumindest eines
der Merkmale einer Radius- und einer Rundungsausbildung aufweist,
c) das Mittel zum Verteilen von Beanspruchungen darin besteht, dass die Innenränder
der Wände an den in diesen vorhandenen Schlitzen (234) zumindest eines der Merkmale
einer Fase und eines gemischten Radius aufweisen, und die distalen Enden der axial
ausgerichteten Schlitze (234) zumindest eines der Merkmale einer Radius- und einer
Rundungsausbildung aufweisen, und
d) das Mittel zum Verteilen von Beanspruchungen besteht darin, dass zumindest einer
der axial ausgerichteten Schlitze (234) verjüngt ist.
6. Nähfadenankeranordnung nach Anspruch 1, ferner mit folgendes umfassend:
eines oder mehrere zusätzliche Verankerungselemente (220), von denen jedes einen axialen
Kanal zum Aufsetzen auf den Schaft (212) ausbildet, wobei die Verankerungselemente(220)
in Reihe auf dem Schaft (212) angeordnet sind, und
einem distalstes Verankerungselement (220), das ein distales Ende für einen Eingriff
mit dem proximalen Ende eines distalen Endes des Schaftes (212) aufweist, wobei jedes
der anderen Verankerungselemente (220) in Reihe auf dem Schaft (212) angeordnet ist,
wobei jedes Verankerungselement (220) eine zwischen sich eine Wand ausbildende innere
und äußere Umfangsfläche aufweist, in der Wand eine Mehrzahl von axial ausgerichteten
Schlitzen (234) in Verbindung mit dem axialen Kanal gebildet ist, die Schlitze (234)
am proximalen Ende des Elements beginnen und distal verlaufen und die Mehrzahl von
Schlitzen (234) ferner eine Mehrzahl von flexiblen Wandabschnitten bildet, die zwischen
benachbarten, axial ausgerichteten Schlitzen (234) angeordnet sind, und
wobei das distale Ende des rohrförmigen Expanders für einen Eingriff mit dem proximalen
Ende eines proximalsten Verankerungselements (220) ausgebildet ist,
das proximalste Verankerungselement (220) hergerichtet ist für eine proximale Bewegung
in einem Knochenloch von einer ersten Position, in der sein proximales Ende mit dem
distalen Ende des Expanderelements (235) in Eingriff steht, in eine zweite Position,
in der das proximale Ende dieses Verankerungselements (220) das distale Ende des Expanderelements
(235) übergreift, derart, dass sich flexible Wandabschnitte in die Wand des Knochenloches
hinein aufweiten, und
die anderen Verankerungselemente (220) hergerichtet sind für eine proximale Bewegung
in einem Knochenloch von ihrer jeweiligen ersten Position, in der ihre jeweilige proximalen
Enden in Eingriff mit den distalen Enden des jeweils angrenzenden Verankerungselements
(220) stehen, in eine jeweilige zweite Position, in der die jeweiligen proximalen
Enden die jeweiligen distalen Enden übergreifen, derart, dass sich die jeweiligen
flexiblen Wandabschnitte in die Wand des Knochenloches hinein aufweiten.
7. Nähfadenankeranordnung nach Anspruch 4, ferner folgendes umfassend.
eines oder mehrere zusätzliche Verankerungselemente (220), jeweils mit proximalen
und distalen Enden und jeweils für eine Bewegung in einem Knochenloch, wobei die erste
Postion diejenige ist, in der ein proximales Ende des Verankerungselements (220) in
Gegenüberlage zu dem distalen Ende eines benachbarten des Expanderelements (235) und
eines Verankerungselements (220) steht, und wobei die zweite Position diejenige ist,
in der sich das Verankerungselement (220) im Knochenloch bewegt, derart, dass sein
proximales Ende das distale Ende eines angrenzenden des Expanderelements (235) und
des Verankerungselements (220) übergreift, womit das proximale Ende des Verankerungselements
(220) in die Wand des Knochenlochs hineingedrückt wird.
8. Nähfadenankeranordnung nach Anspruch 7, bei der das distale Ende des Schaftes (272)
einen Schlitz am distalen Ende des gewählten Verankergungselements (220) aufweist
und wobei wahlweise das distale Ende des Schaftes (212) eine Basis besitzt, die am
distalen Ende des gewählten Verankerungselements (220) gerundet ist und wobei weiterhin
wahlweise das distale Ende des Schaftes (212) eine Basis hat, die wie ein Tränentropfen
geformt ist.
9. Nähfadenankeranordnung nach einem der Ansprüche 6 und 8, wobei entweder
a) die Gegenkonizität (310) distal zu einem distalen Ende der axial ausgerichteten
Schlitze (234) angeordnet ist, die in den Wänden des gewählten Verankerungselements
(220) gebildet sind, und wobei wahlweise das distale Ende des Schaftes (212) eines
der Merkmale eines Schlitzes, einer Schulter und einer Öffnung aufweist, oder
b) zumindets ein von den Verankerungselementen (220) ausgewähltes Element Mittel zum
Verteilen einer oder mehrerer Beanspruchungen aufweist, denen es durch Einbringen
der Ankeranordnung in den Knochen ausgesetzt ist, und wobei wahlweise eines der folgenden
Merkmale gegeben ist:
i) das Mittel zum Verteilen von Beanspruchungen besteht darin, dass ein Innenrand
von zumindest einer der Wände an einem in diesen vorhandenen Schlitz zumindest eines
der Merkmale einer Fase und eines gemischten Radius aufweist
ii) das Mittel zum Verteilen von Beanspruchungen darin besteht, dass ein distales
Ende von zumindest einem der axial ausgerichteten Schlitze (234) zumindest eines der
Merkmale einer Radius- und einer Rundungsausbildung aufweist,
iii) das Mittel zum Verteilen von Beanspruchungen darin besteht, dass Innenränder
der Wände an den in diesen vorhandenen Schlitzen (234) zumindest eines der Merkmale
einer Phase und eines gemischten Radius aufweisen, und distale Enden der axial ausgerichteten
Schlitze (234) zumindest eines der Merkmale einer Radius- und einer Rundungsausbildung
aufweisen und
iv) das Mittel zum Verteilen von Beanspruchungen darin besteht, dass zumindest einer
der axial ausgerichteten Schlitze (234) des gewählten Verankerungselements (220) verjüngt
ist.
10. Nähfadenankeranordnung nach Anspruch 6, bei der
wahlweise das distale Ende des Schaftes (212) einen am distalen Ende des gewählten
Verankerungselements (220) angeordneten Schlitz aufweist und weiterhin wahlweise
das distale Ende des Schaftes (212) eine Basis besitzt, die am distalen Ende des gewählten
Verankerungselements (220) gerundet ist, und weiterhin wahlweise
das distale Ende des Schaftes (212) eine Basis besitzt, die wie ein Tränentropfen
geformt ist.
11. Nähfadenankeranordnung nach einem der Ansprüche 4 und 7,
bei der das Expanderelement (235) ferner zumindest einen Vorsprung aufweist und wobei
ferner die Mehrzahl der axial ausgerichteten Schlitze (234) in Verbindung mit dem
zumindest einen Vorsprung zum Verhindern eines zu starken Übergreifens des Expanderelements
(235) steht.
1. Ensemble d'ancrage de suture, comprenant :
une tige d'insertion (212) ayant une partie cassable (218) adjacente à son extrémité
distale (214) ;
un élément d'ancrage tubulaire (220) ayant, défini à l'intérieur de celui-ci, un canal
axial pour le chargement sur la tige (212) et ayant une extrémité distale pour la
mise en prise avec l'extrémité distale de la tige (212), l'élément d'ancrage (220)
comprenant des surfaces périphériques interne et externe formant une paroi entre elles,
la paroi ayant, définie à l'intérieur de celle-ci, une pluralité de fentes (234) orientées
de manière axiale, en communication avec le canal axial, les fentes (234) commençant
au niveau d'une extrémité proximale de l'élément et s'étendant de manière distale,
dans lequel la pluralité de fentes (234) définit en outre une pluralité de sections
de paroi flexible disposées entre les fentes (234) adjacentes orientées de manière
axiale ;
un élément d'expansion tubulaire (235) ayant, défini à l'intérieur de celui-ci, un
canal axial, l'élément d'expansion (235) étant adapté pour le chargement sur la tige
(212) et ayant une extrémité distale pour la mise en prise avec l'extrémité proximale
de l'élément d'ancrage tubulaire (220), dans lequel l'élément d'ancrage tubulaire
(220) est adapté pour le mouvement proximal à l'intérieur d'un trou d'os d'une première
position, dans laquelle son extrémité proximale est mise en prise par came avec l'extrémité
distale de l'élément d'expansion (235), jusqu'à une seconde position dans laquelle
l'extrémité proximale de l'élément d'ancrage tubulaire (220) est en prise avec l'extrémité
distale de l'élément d'expansion (235) de sorte que les sections de paroi flexible
s'agrandissent dans une paroi d'un trou d'os ; et
un dispositif de retenue de suture (221) couplé à l'élément d'ancrage (220), caractérisé en ce que la tige d'insertion (212) comprend une conicité inversée (310) décrivant un angle
inclus de 1° à 10° par rapport à un axe longitudinal de la tige (212) disposé de manière
distale par rapport à la partie cassable (218) et positionné pour se mettre en prise
avec l'élément d'expansion (235) lorsqu'il est dans la seconde position afin d'empêcher
un mouvement involontaire ou excessif de l'élément d'expansion (235) par rapport à
l'élément d'ancrage (220).
2. Ensemble d'ancrage de suture selon la revendication 1, dans lequel l'extrémité distale
de la tige (212) comprend une fente disposée au niveau de l'extrémité distale de l'élément
d'ancrage (220), et/ou
dans lequel l'extrémité distale de la tige (212) a une base qui est arrondie au niveau
de l'extrémité distale de l'élément d'ancrage (220), et/ou
dans lequel l'extrémité distale de la tige (212) a une base qui est en forme de goutte
d'eau.
3. Ensemble d'ancrage de suture selon la revendication 1, dans lequel :
a) une conicité inversée (310) est disposée de manière distale par rapport à une extrémité
distale des fentes (234) orientées de manière axiale définies dans les parois, et
facultativement, dans lequel l'extrémité distale de la tige (212) comprend l'un quelconque
parmi une fente, un épaulement et une ouverture ; ou
b) l'élément d'ancrage (220) comprend des moyens pour répartir une ou plusieurs contraintes
placées sur l'élément d'ancrage (220) par la mise en place de l'ensemble d'ancrage
dans l'os, et facultativement, dans lequel l'un quelconque parmi :
i) les moyens pour répartir les contraintes comprennent un bord interne d'au moins
l'une des parois au niveau d'une fente à l'intérieur de celle-ci ayant au moins l'un
parmi un chanfrein et un rayon mixte ;
ii) les moyens pour répartir les contraintes comprennent une extrémité distale d'au
moins l'une des fentes (234) orientées de manière axiale qui est au moins l'une parmi
une fente arrondie et une fente ronde ;
iii) les moyens pour répartir les contraintes comprennent des bords internes des parois
au niveau des fentes (234) à l'intérieur de celles-ci, ayant au moins l'une parmi
une chambre et un rayon mixte, et les extrémités distales des fentes (234) orientées
de manière axiale étant au moins arrondies et rondes ; et
iv) les moyens pour répartir les contraintes comprennent au moins l'une des fentes
(234) orientées de manière axiale qui sont progressivement rétrécies.
4. Ensemble d'ancrage de suture selon la revendication 1, et dans lequel :
l'élément d'expansion (235) a une extrémité proximale ;
l'élément d'ancrage (220) est agencé pour le mouvement à l'intérieur d'un trou d'os
d'une première position dans laquelle l'extrémité proximale de l'élément d'ancrage
(220) est en relation de vis-à-vis par rapport à l'extrémité distale de l'élément
d'expansion (235), et ensuite jusqu'à une seconde position dans laquelle l'élément
d'ancrage (220) se déplace à l'intérieur du trou d'os de sorte que son extrémité proximale
se met en prise par came sur l'extrémité distale de l'élément d'expansion (235), forçant
l'extrémité proximale de l'élément d'ancrage (220) dans une paroi du trou d'os ; et
comprenant :
des moyens pour répartir une ou plusieurs contraintes placées sur l'élément d'ancrage
(220) par la mise en place de l'ensemble d'ancrage dans l'os.
5. Ensemble d'ancrage de suture selon la revendication 4, dans lequel l'un quelconque
parmi :
a) les moyens pour répartir les contraintes comprennent un bord interne d'au moins
l'une des parois au niveau d'une fente à l'intérieur de celle-ci ayant au moins l'un
parmi un chanfrein et un rayon mixte ;
b) les moyens pour répartir les contraintes comprennent une extrémité distale d'au
moins l'une des fentes (234) orientées de manière axiale qui est au moins l'une parmi
une fente arrondie et une fente ronde ;
c) les moyens pour répartir les contraintes comprennent des bords internes des parois
au niveau des fentes (234) à l'intérieur de celles-ci, ayant au moins l'un parmi un
chanfrein et un rayon de mélange, et les extrémités distales des fentes (234) orientées
de manière axiale étant au moins l'une parmi une fente arrondie et une fente ronde
; et
d) les moyens pour répartir les contraintes comprennent au moins l'une des fentes
(234) orientées de manière axiale qui sont progressivement rétrécies.
6. Ensemble d'ancrage de suture selon la revendication 1, comprenant en outre :
un ou plusieurs éléments d'ancrage supplémentaires (220), ayant chacun, défini à l'intérieur
de celui-ci, un canal axial pour le chargement sur la tige (212), les éléments d'ancrage
(220) étant agencés en série sur cette tige (212) ; et
un élément d'ancrage le plus distal (220) ayant une extrémité distale pour la mise
en prise avec une extrémité proximale d'une extrémité distale de la tige (212), chacun
des autres éléments d'ancrage (220) étant agencé en série sur cette tige (212) ;
chaque élément d'ancrage (220) comprenant des surfaces périphériques interne et externe
formant une paroi entre celles-ci, la paroi ayant défini à l'intérieur de celle-ci
une pluralité de fentes (234) orientées de manière axiale en communication avec le
canal axial, les fentes (234) commençant au niveau d'une extrémité proximale de l'élément
et s'étendant de manière distale, dans lequel la pluralité de fentes (234) définit
en outre une pluralité de sections de paroi flexible disposées entre les fentes (234)
adjacentes orientées de manière axiale ;
dans lequel l'extrémité distale du dispositif d'expansion tubulaire est configurée
pour la mise en prise avec une extrémité proximale d'un élément d'ancrage le plus
proximal (220) ;
dans lequel l'élément d'ancrage le plus proximal (220) est adapté pour le mouvement
proximal à l'intérieur d'un os maintenu d'une première position dans laquelle son
extrémité proximale est mise en prise avec l'extrémité distale de l'élément d'expansion
(235) jusqu'à une seconde position dans laquelle l'extrémité proximale de cet élément
d'ancrage (220) se met en prise sur l'extrémité distale de l'élément d'expansion (235)
de sorte que les sections de paroi flexible s'agrandissent dans une paroi du trou
d'os ; et
dans lequel les autres éléments d'ancrage (220) sont adaptés pour le mouvement proximal
avec un trou d'os à partir des premières positions respectives dans lesquelles leurs
extrémités proximales respectives sont mises en prise avec des extrémités distales
des éléments d'ancrage (220) adjacents respectifs, jusqu'à des secondes positions
respectives dans lesquelles les extrémités proximales respectives sont mises en prise
sur les extrémités distales respectives de sorte que les sections de paroi flexible
respectives s'agrandissent dans une paroi du trou d'os.
7. Ensemble d'ancrage de suture selon la revendication 4, comprenant en outre :
un ou plusieurs éléments d'ancrage supplémentaires (220) ayant chacun des extrémités
proximale et distale, et chacune pour le mouvement à l'intérieur d'un trou d'os, dans
lequel la première position est la position dans laquelle une extrémité proximale
de l'élément d'ancrage (220) est en relation de vis-à-vis par rapport à l'extrémité
distale d'un élément adjacent parmi l'élément d'expansion (235) et un élément d'ancrage
(220) et dans lequel la seconde position est une position dans laquelle l'élément
d'ancrage (220) se déplace à l'intérieur du trou d'os de sorte que son extrémité proximale
se met en prise sur l'extrémité distale d'un élément adjacent parmi l'élément d'expansion
(235) et un élément d'ancrage (220), forçant l'extrémité proximale de l'élément d'ancrage
(220) dans une paroi du trou d'os.
8. Ensemble d'ancrage de suture selon la revendication 7, dans lequel l'extrémité distale
de la tige (212) comprend une fente disposée au niveau de l'extrémité distale de l'élément
d'ancrage (220) sélectionné et facultativement, dans lequel l'extrémité distale de
la tige (212) a une base qui est ronde au niveau de l'extrémité distale de l'élément
d'ancrage (220) sélectionné et encore facultativement, dans lequel l'extrémité distale
de la tige (212) a une base qui est en forme de goutte d'eau.
9. Ensemble d'ancrage de suture selon l'une quelconque des revendications 6 et 8 et :
a) dans lequel la conicité inversée (310) est disposée de manière distale par rapport
à une extrémité distale des fentes (234) orientées de manière axiale définies dans
les parois de l'élément d'ancrage (220) sélectionné et facultativement dans lequel
l'extrémité distale de la tige (212) comprend l'un quelconque parmi une fente, un
épaulement et une ouverture ; ou
b) au moins un élément sélectionné des éléments d'ancrage (220) comprend des moyens
pour répartir une ou plusieurs contraintes placées sur ceux-ci par la mise en place
de l'ensemble d'ancrage dans l'os et facultativement, dans lequel l'un quelconque
parmi :
i) les moyens pour répartir les contraintes comprennent un bord interne d'au moins
l'une des parois au niveau d'une fente à l'intérieur de celle-ci ayant au moins l'un
parmi un chanfrein et un rayon mixte ;
ii) les moyens pour répartir les contraintes comprennent une extrémité distale d'au
moins l'une des fentes (234) orientées de manière axiale qui est au moins une fente
arrondie et une fente ronde ;
iii) les moyens pour répartir les contraintes comprennent des bords internes des parois
au niveau des fentes (234) à l'intérieur de celles-ci ayant au moins l'un parmi un
chanfrein et un rayon de mélange, et les extrémités distales des fentes (234) orientées
de manière axiale étant au moins une fente arrondie et une fente ronde ; et
iv) les moyens pour répartir les contraintes comprennent au moins l'une des fentes
orientées de manière axiale (234) de l'ancrage (220) sélectionné qui est progressivement
rétréci.
10. Ensemble d'ancrage de suture selon la revendication 6, dans lequel, facultativement,
l'extrémité distale de la tige (212) comprend une fente disposée au niveau de l'extrémité
distale d'un élément d'ancrage (220) sélectionné, et encore facultativement,
dans lequel l'extrémité distale de la tige (212) a une base qui est arrondie au niveau
de l'extrémité distale de l'élément d'ancrage (220) sélectionné et encore facultativement,
dans lequel l'extrémité distale de la tige (212) a une base qui est en forme de goutte
d'eau.
11. Ensemble d'ancrage de suture selon l'une quelconque des revendications 4 et 7, dans
lequel l'élément d'expansion (235) comprend en outre au moins une saillie et en outre
dans lequel la pluralité de fentes (234) orientées de manière axiale sont en communication
avec au moins une saillie pour empêcher la mise en prise excessive sur l'élément d'expansion
(235).